Using computational approaches to study dengue virus capsid assembly

Q2 Mathematics
G. S. Salas, A. E. L. Hernandez, Jiadi He, C. Karki, Yixin Xie, Shengjie Sun, Yuejiao Xian, Lin Li
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引用次数: 10

Abstract

Abstract Dengue viral capsid plays a significant role in viral life cycle of dengue, especially in vial genome protection and virus-cell fusion. Revealing mechanisms of the viral capsid protein assembly may lead to the discovery of anti-viral drugs that inhibit the assembly of the viral capsid. The E and M-proteins are arranged into heterotetramers, which consists of two copies of E and M-protein. The heterotetramers are assembled into a highly ordered capsid. While many investigations of the interactions between E and M-proteins have been performed, there are very few studies on the interactions between the heterotetramers and their roles in capsid assembly. Utilizing a series of computational approaches, this study focuses on the assembly mechanism of the heterotetramers. Our electrostatic analyses lead to the identification of four binding modes between each two dengue heterotetramers that repeat periodically throughout the virus capsid. Among these four binding modes, heterotetramers in binding modes I, II and IV are attractive. But in the binding mode III the heterotetramers repel each other, making mode III a suitable target for drug design. Furthermore, MD simulations were performed following by salt bridges analysis. This study demonstrates that using computational approaches is a promising direction to study the dengue virus.
利用计算方法研究登革热病毒衣壳组装
摘要登革热病毒衣壳在登革热病毒生命周期中起着重要作用,尤其是在小瓶基因组保护和病毒细胞融合方面。揭示病毒衣壳蛋白组装的机制可能导致发现抑制病毒衣壳组装的抗病毒药物。E和M蛋白排列成异四聚体,由E和M蛋白质的两个拷贝组成。异源四聚体被组装成高度有序的衣壳。虽然已经对E和M蛋白之间的相互作用进行了许多研究,但对异源四聚体之间的相互关系及其在衣壳组装中的作用的研究很少。利用一系列的计算方法,本研究集中于异源四聚体的组装机制。我们的静电分析确定了每两种登革热异四聚体之间的四种结合模式,这些模式在整个病毒衣壳中周期性重复。在这四种结合模式中,结合模式I、II和IV中的异四聚体是有吸引力的。但在结合模式III中,异四聚体相互排斥,使模式III成为药物设计的合适靶点。此外,在盐桥分析之后进行了MD模拟。这项研究表明,使用计算方法是研究登革热病毒的一个很有前途的方向。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Computational and Mathematical Biophysics
Computational and Mathematical Biophysics Mathematics-Mathematical Physics
CiteScore
2.50
自引率
0.00%
发文量
8
审稿时长
30 weeks
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